Polar confinement of the Sun's interior magnetic field by laminar magnetostrophic flow
arXiv:1005.5482 · doi:10.1017/jfm.2011.93
Abstract
The global-scale interior magnetic field needed to account for the Sun's observed differential rotation can be effective only if confined below the convection zone in all latitudes, including the polar caps. Axisymmetric nonlinear MHD solutions are obtained showing that such confinement can be brought about by a very weak downwelling flow U~10^{-5}cm/s over each pole. Such downwelling is consistent with the helioseismic evidence. All three components of the magnetic field decay exponentially with altitude across a thin "magnetic confinement layer" located at the bottom of the tachocline. With realistic parameter values, the thickness of the confinement layer ~10^{-3} of the Sun's radius. Alongside baroclinic effects and stable thermal stratification, the solutions take into account the stable compositional stratification of the helium settling layer, if present as in today's Sun, and the small diffusivity of helium through hydrogen, chi. The small value of chi relative to magnetic diffusivity produces a double boundary-layer structure in which a "helium sublayer" of smaller vertical scale is sandwiched between the top of the helium settling layer and the rest of the confinement layer. Solutions are obtained using both semi-analytical and purely numerical, finite-difference techniques. The confinement-layer flows are magnetostrophic to excellent approximation. More precisely, the principal force balances are between Lorentz, Coriolis, pressure-gradient and buoyancy forces, with relative accelerations and viscous forces negligible. This is despite the kinematic viscosity being somewhat greater than chi. We discuss how the confinement layers at each pole might fit into a global dynamical picture of the solar tachocline. That picture, in turn, suggests a new insight into the early Sun and into the longstanding enigma of solar lithium depletion.
Accepted by JFM. 36 pages, 10 figures
References in corpus (7)
- Magnetic confinement of the solar tachocline
- Dynamics of the solar tachocline II: the stratified case
- On the penetration of meridional circulation below the solar convection zone
- The Origin of Solar Activity in the Tachocline
- Magnetic field confinement by meridional flow and the solar tachocline
- Diamagnetic pumping near the base of a stellar convection zone
- Confinement of the Sun's interior magnetic field: some exact boundary-layer solutions
Cited by in corpus (11)
- Dynamics of the solar tachocline III: Numerical solutions of the Gough and McIntyre model
- The Sun's meridional circulation and interior magnetic field
- Nonlinear dynamics of magnetohydrodynamic flows of heavy fluid over an arbitrary surface in shallow water approximation
- Magnetic confinement of the solar tachocline: The oblique dipole
- Spin-down dynamics of magnetized solar-type stars
- A self-consistent model of the solar tachocline
- Some glimpses from helioseismology at the dynamics of the deep solar interior
- Angular momentum transport, layering, and zonal jet formation by the GSF instability: nonlinear simulations at a general latitude
- The radiative zone of the Sun and the tachocline: stability of baroclinic patterns of differential rotation
- Linear and nonlinear properties of the Goldreich-Schubert-Fricke instability in stellar interiors with arbitrary local radial and latitudinal differential rotation
- On the dynamical interaction between overshooting convection and an underlying dipole magnetic field -- I. The non-dynamo regime